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Continuous inertial focusing, ordering, and separation of particles in microchannels

机译:连续惯性聚焦,排序和分离微通道中的颗粒

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摘要

Under laminar flow conditions, when no external forces are applied, particles are generally thought to follow fluid streamlines. Contrary to this perspective, we observe that flowing particles migrate across streamlines in a continuous, predictable, and accurate manner in microchannels experiencing laminar flows. The migration is attributed to lift forces on particles that are observed when inertial aspects of the flow become significant. We identified symmetric and asymmetric channel geometries that provide additional inertial forces that bias particular equilibrium positions to create continuous streams of ordered particles precisely positioned in three spatial dimensions. We were able to order particles laterally, within the transverse plane of the channel, with > 80-nm accuracy, and longitudinally, in regular chains along the direction of flow. A fourth dimension of rotational alignment was observed for discoidal red blood cells. Unexpectedly, ordering appears to be independent of particle buoyant direction, suggesting only minor centrifugal contributions. Theoretical analysis indicates the physical principles are operational over a range of channel and particle length scales. The ability to differentially order particles of different sizes, continuously, at high rates, and without external forces in microchannels is expected to have a broad range of applications in continuous bioparticle separation, high-throughput cytometry, and large-scale filtration systems.
机译:在层流条件下,当不施加外力时,通常认为颗粒遵循流体流线。与该观点相反,我们观察到流动颗粒以连续,可预测和准确的方式在流经层流的微通道中跨流线迁移。迁移归因于在流体的惯性方面变得重要时观察到的粒子上的升力。我们确定了对称和不对称的通道几何形状,这些几何形状提供了额外的惯性力,这些惯性力使特定的平衡位置产生偏差,从而创建了精确定位在三个空间维度上的连续有序粒子流。我们能够在通道的横向平面内以> 80 nm的精度横向排列颗粒,并沿着流向在规则链中纵向排列颗粒。对于盘状红细胞,观察到旋转对准的第四维。出乎意料的是,排序似乎与颗粒的浮力方向无关,这表明离心作用很小。理论分析表明,物理原理可在一定范围的通道和颗粒长度尺度上运行。在微通道中连续不断地,高速率,无外力地对不同大小的颗粒进行有序排列的能力有望在连续生物颗粒分离,高通量细胞计数法和大规模过滤系统中得到广泛的应用。

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